Cam type door closer
10822853 ยท 2020-11-03
Assignee
Inventors
Cpc classification
E05F3/104
FIXED CONSTRUCTIONS
International classification
E05F3/10
FIXED CONSTRUCTIONS
Abstract
A cam type door closer includes a housing, a first piston set mounted in one side of the housing, a second piston set mounted in the other side of the housing, which includes a second piston movably mounted in a shaft hole of a first piston of the first piston set, a gap compensation device mounted in the second piston, a second spring having one end thereof stopped against the second piston and a security and sealing cap mounted in the housing to stop the other end of the second spring, and a drive shaft assembly rotatably mounted in a longitudinal passage of housing, which includes a shaft and an eccentric cam mounted on the shaft with one side thereof stopped against a roller of the first piston set and an opposite side thereof stopped against the second piston.
Claims
1. A cam type door closer, comprising: a housing comprising an axial passage and a longitudinal passage in communication with said axial passage, said axial passage being perpendicular to said longitudinal passage, said axial passage running through two opposite sides of said housing; a first piston set mounted in said axial passage of said housing, said first piston set comprising a first piston, a roller, a plug pin, a first spring and a first sealing cap, said first piston comprising an open chamber, a shaft hole and an elongated slot respectively disposed in communication with each other, said open chamber being located in a middle part of said first piston, said shaft hole being located in a distal end of said first piston, said elongated slot being disposed above said open chamber, said first spring being mounted in said axial passage of said housing with one end thereof stopped against said first piston and an opposite end thereof stopped against said first sealing cap, said first sealing cap being mounted in said housing to seal one end of said axial passage; a second piston set mounted in said axial passage of said housing, said second piston set comprising a second piston, a gap compensation device, a second spring and a second sealing cap, said second piston being movably mounted in said shaft hole of said first piston, said second piston comprising a large diameter passage and a small diameter passage in communication with each other, said gap compensation device being mounted in said large diameter passage of said second piston, said second spring being mounted in said axial passage of said housing with one end thereof stopped against said second piston and an opposite end thereof stopped against said second sealing cap, said second sealing cap being mounted in said housing to seal an opposite end of said axial passage; and a drive shaft assembly rotatably inserted into said longitudinal passage of said housing, said drive shaft assembly comprising a shaft and an eccentric cam, said eccentric cam being located on said shaft with one side thereof stopped against said roller of said first piston set and an opposite side thereof stopped against said second piston of said second piston set, wherein one end of said second piston has a contact flat surface and said contact flat surface of said second piston is stopped against said eccentric cam.
2. The cam type door closer as claimed in claim 1, wherein said housing further comprises a recess located above said longitudinal passage; said shaft comprises a latching segment, a connecting segment and a transition segment between said latching segment and said connecting segment; said eccentric cam is mounted on said shaft between said transition segment and said connecting segment within said open chamber of said first piston, said connecting segment of said shaft being inserted through said elongated slot of said first piston into said recess of said housing.
3. The cam type door closer as claimed in claim 2, wherein said drive shaft assembly further comprises an upper bushing, a gasket and a lower bushing set, said upper bushing and said gasket being mounted in said recess of said housing, said connecting segment of said shaft being inserted into said upper bushing, said lower bushing set being mounted on said transition segment of said shaft.
4. The cam type door closer as claimed in claim 1, wherein said gap compensation device of said second piston set comprises a locating ring, a sleeve, a plug, an elastic member and a locating pin, said locating ring being threaded into said large diameter passage of said second piston, said sleeve comprising a sleeve body and a flange at a distal end of said sleeve body, said sleeve body being inserted into said locating ring, said flange being stopped at an end edge of said locating ring, said sleeve body of said sleeve comprising an accommodating space and a small passage coaxially communicated with each other, said plug and said elastic member being sequentially mounted in said accommodating space of said sleeve body, said plug having one end thereof facing toward said small passage of said sleeve body and an opposite end thereof stopped against said elastic member, said locating pin being inserted into said sleeve body to pass through said accommodating space for stopping said elastic member.
5. The cam type door closer as claimed in claim 1, wherein said eccentric cam comprises two positioning grooves, one said positioning groove being adapted for stopping against said roller of said first piston set when said housing is biased to a first predetermined pivot angle, the other said positioning groove being adapted for stopping against said second piston of said second piston set when said housing is biased to a second predetermined pivot angle.
6. The cam type door closer as claimed in claim 1, wherein said eccentric cam comprises a concave arc portion adapted for stopping against said second piston of said second piston set when said housing is biased to a predetermined pivot angle.
7. The cam type door closer as claimed in claim 1, further comprising a locating block, said locating block comprising a mounting plate, a plurality of adjusting members and an adjustment plate, said mounting plate being affixed to the floor, said mounting plate comprising an accommodation chamber and a plurality of adjusting holes on a peripheral wall thereof in communication with said accommodation chamber, said adjusting members being respectively movably mounted in said adjusting holes, said adjustment plate being mounted in said accommodation chamber of said mounting plate and connected to said shaft of said drive shaft assembly and stoppable by said adjusting members to move relative to said mounting plate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(9) The applicant first describes here, throughout the specification, including the preferred embodiment described below and the claims of the scope of the present application, the nouns relating to directionality are based on the direction in the schema. In the following preferred embodiment and the drawings, the same reference numerals are used to refer to the same or similar elements or structural features thereof.
(10) Referring to
(11) The housing 20 is an elongated member, having an axial passage 21, a longitudinal passage 23 and a recess 25, which are connected to each other. The axial passage 21 is perpendicular to the longitudinal passage 23. The axial passage 21 runs through two opposite sides of the housing 20. The recess 25 is located above the longitudinal passage 23.
(12) The first piston set 30 is located in one side of the axial passage 21 of the housing 20, comprising a first piston 31, a roller 32, a plug pin 33, a first spring 34 and a first sealing cap 35. The first piston is provided with an open chamber 311, a shaft hole 312 and an elongated slot 313, which are connected to each other. The open chamber 311 is located in the middle of the first piston 31. The shaft hole 312 is at the end of the first piston 31. The elongated slot 313 is located above the open chamber 311. The first spring 34 is mounted in the axial passage 21 of the housing 20 with one end thereof stopped against the first piston 31 and an opposite end thereof stopped against the first sealing cap 35. The first sealing cap 35 is mounted in the housing 20 to seal one end of the axial passage 21.
(13) The second piston set 40 is located in an opposite side of the axial passage 21 of the housing 20, comprising a second piston 41, a gap compensation device 42, a second spring 43 and a second sealing cap 44. The second piston 41 is movably mounted in the shaft hole 312 of the first piston 31. The second piston 41 is provided with a large diameter passage 411 and a small diameter passage 412, which are connected to each other. The gap compensation device 42 is mounted in the large diameter passage 411 of the second piston 41. The second spring 43 is mounted in the axial passage 21 of the housing 20 with one end thereof stopped against the second piston 41, and an opposite end thereof stopped against the second sealing cap 44. The second sealing cap 44 is mounted in the housing 20 to seal the opposite end of the axial passage 21. More specifically, the gap compensation device 42 of the second piston set 40 comprises a locating ring 421, a sleeve 422, a plug 423, an elastic member 424 and a locating pin 425. The locating ring 421 is threaded into the large diameter passage 411 of the second piston 41. The sleeve 422 has a sleeve body 426 and a flange 427 at one end of the sleeve body 426. The sleeve body 426 is inserted through the locating ring 421. The flange 427 is stopped at an end edge of the locating ring 421. The sleeve body 426 of the sleeve 422 is provided with an accommodating space 428 and a small passage 429 in coaxial communication relationship. The plug 423 and the elastic member 424 are sequentially disposed on the accommodating space 428 of the sleeve body 426. The plug 423 has one end thereof facing toward the small passage 429 of the sleeve body 426, and an opposite end thereof stopped against the elastic member 424. The locating pin 425 is placed on the sleeve body 426 and passes through the accommodating space 428 to abut the elastic member 424.
(14) The drive shaft assembly 50 is rotatably inserted through the longitudinal passage 23 of the housing 20, comprising a shaft 51, an eccentric cam 52, an upper bushing 53, a gasket 54 and a lower bushing set 55. The shaft 51 has a latching segment 511, a connecting segment 513 and a transition segment 515 between the latching segment 511 and the connecting segment 513. The eccentric cam 52 is located between the transition segment 515 and connecting segment 513 of the shaft 51 within the open chamber 311 of the first piston 31. Further, the eccentric cam 52 is a symmetrical structure, having a positioning groove 521 at each of two opposite sides thereof and a concave arc portion 523 between the two positioning groove 521. When the housing 20 is turned to a first predetermined pivot angle (the door is opened 90 degrees to the left as shown in
(15) The locating block 60 comprises a mounting plate 61, a plurality of adjusting members (not shown) and an adjustment plate 62. The mounting plate 61 is fixed on the floor and provided with an accommodation chamber 611, and a plurality of adjusting holes 612 are formed on the outer peripheral surface thereof to communicate with the accommodation chamber 611. Each adjusting member is movably mounted in one respective adjusting hole 612. The adjustment plate 62 is mounted in the accommodation chamber 611 of the mounting plate 61 and connected with the latching segment 511 of the shaft 51 of the drive shaft assembly 50 and can be moved relative to the mounting plate 61 by the abutment of the adjusting members.
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(17) In summary, when the user closes the glass door, the first spring 34 of the first piston set 30 and the second spring 43 of the second piston set 40 will provide moderate pressure to the first piston 31 and the second piston 41 respectively, enabling the roller 32 and the second piston 41 to provide resistance to the eccentric cam 52 of the drive shaft assembly 50 in the whole door closing process, so that the door closing speed of the glass door can be controlled at all times. This can effectively overcome the damage of the internal components of the door closer when the glass door is pivoted from 90 degrees to 75 degrees.
(18) Although a particular embodiment of the invention has been described in detail for purposes of illustration, various modifications and enhancements may be made without departing from the spirit and scope of the invention. Accordingly, the invention is not to be limited except as by the appended claims.